Technique for using memory attributes

ABSTRACT

A technique for using memory attributes to relay information to a program or other agent. More particularly, embodiments of the invention relate to using memory attribute bits to check various memory properties in an efficient manner.

RELATED APPLICATIONS

This is a Continuation of application Ser. No. 13/175,928, filed Jul. 4, 2011, currently pending, which is a Continuation of application Ser. No. 11/349,661, filed Feb. 7, 2006, now U.S. Pat. No. 7,991,965, issued Aug. 2, 2011.

FIELD OF THE INVENTION

Embodiments of the invention relate to microprocessors and microprocessor systems. More particularly, embodiments of the invention pertain to a technique to use, check, and set memory states or other information associated with one or more memory locations using attribute bits that correspond to the one or more memory locations. is invention

BACKGROUND OF THE INVENTION

In modern computing systems, microprocessors or microprocessor cores may access a vast memory address space, which may include a vast number of memory types. For example, an address range of memory in a computer system may store information that can only be accessed by a particular processor or processor core, whereas other address ranges may be accessed by multiple processors or processor cores. Exclusivity of memory is only one attribute that may be associated with a memory address range.

In some prior art systems, memory permissions or access rules may be controlled by the operating system (OS) via virtual memory management in a relatively course granularity of virtual memory pages. The granularity of virtual memory pages varies, in some prior art systems, from around 4 kilobytes (KB) through many megabytes (MB) in size. Changing the memory permissions may be an expensive operation in terms of system latency, die real estate, or system cost

There may be situations in which a program wants to check a memory address before accessing it. For example, a program may check an address before accessing it when debugging programs, checking bounds and type safety in various computer programming languages (e.g., “Java”), profiling programs when analyzing their performance, or other reasons.

If a program checks an address according to a set of rules, it may use at least two prior art approaches: One approach is to use the OS to ensure addresses that do not meet the rules will be detected by the virtual memory management. In this approach the granularity may be restricted to the relatively coarse grain of the virtual memory management addressing scheme, and changing the access rules can be very costly. Another prior art approach is to perform a set of checks on an address within the program itself before using the address to access memory. The set of checks can compare the address against any set of rules at any granularity. The drawback of this prior art approach is that a substantial performance overhead may be paid for every memory reference to perform the appropriate checks.

BRIEF DESCRIPTION OF THE DRAWINGS

Embodiments of the invention are illustrated by way of example and not limitation in the figures of the accompanying drawings, in which like references indicate similar elements and in which:

FIG. 1 illustrates a cache memory, in which various cache lines have associated therewith one or more attribute bits, according to one embodiment of the invention.

FIG. 2 illustrates a computer system memory hierarchy in which at least one embodiment of the invention may be used.

FIG. 3 is a flow diagram illustrating operations associated with checking attributes associated with one or more cache lines, according to one embodiment.

FIG. 4 illustrates a shared-bus computer system in which at least one embodiment of the invention may be used.

FIG. 5 illustrates a point-to-point bus computer system in which at least one embodiment of the invention may be used.

DETAILED DESCRIPTION

These and other embodiments of the present invention may be realized in accordance with the following teachings and it should be evident that various modifications and changes may be made in the following teachings without departing from the broader spirit and scope of the invention. The specification and drawings are, accordingly, to be regarded in an illustrative rather than restrictive sense and the invention measured only in terms of the claims.

Embodiments of the invention relate to microprocessors and microprocessor systems. More particularly, embodiments of the invention relate to using memory attribute bits to check various memory properties in an efficient manner.

In one embodiment of the invention, memory attributes associated with a particular segment, or “block”, of memory may be used indicate various properties of the memory block. For example, in one embodiment, there are associated with each block of memory attribute bits that may be defined by a user to indicate any number of properties of the memory block with which they are associated, such as access rights. In one embodiment, each block of memory may correspond to a particular line of cache, such as a line of cache within a level one (L1) or level two (L2) cache memory, and the attributes are represented with bit storage locations located with or otherwise associated with a line of cache memory. In other embodiments, a block of memory for which attributes may be associated may include more than one cache memory line or may be associated with another type of memory, such as DRAM.

FIG. 1 illustrates a portion of cache memory, each line of which having an associated group of attribute bit storage locations, according to one embodiment of the invention. In particular, FIG. 1 illustrates a cache memory 100 including a cache line 105, which corresponds to a particular block of memory (not shown). The cache line 105 has associated therewith a number of attributes to be stored in the form of bits within storage location 110. In one embodiment, the storage location is a register file, whereas in other embodiments, another type of storage area may be used. Within the storage location 110 is a group of attribute bits 115 associated with cache line 105, which can store bits to represent various properties of the cache line, which can be used by a software program that accesses the cache line.

In the embodiment illustrated in FIG. 1, the group of attribute bits contains four bits, which may represent one or more properties of the cache line, depending upon how the attribute bits are assigned. For example, in one embodiment, the attribute bits indicate that the program has recently checked that the block of memory is appropriate for the current portion of the program to access. In other embodiments, the attribute bits may indicate that the program has recorded a recent reference to this block of memory for later analysis by a performance monitoring tools, for example. In other embodiments, the attribute bits may designate other permissions, properties, etc.,

In addition to the attribute bits, each line of cache may also have associated therewith a state value stored in state storage location 120. For example, in one embodiment the state storage location 120 contains a state bit 125 associated with cache line 105 which designates whether the cache line is in a modified state (M), exclusively owned state (E), shared state (S), or invalid state (I). The MESI states can control whether various software threads, cores, or processors can use and/or modify information stored in the particular cache line. In some embodiments the MESI state attribute is included in the attribute bits 115 for cache line 105.

In one embodiment, a cache memory, similar to that of FIG. 1, having associated attribute bits may be accessed by a number of cores in a multi-core processor, each able to execute a number of software threads issued from a sequencer within an operating system. By assigning the appropriate attribute bits with each cache line, each thread within each core of each processor in a computer system may have a line or multiple lines of cache that it can access, control, and/or modify.

FIG. 2 is a conceptual illustration of how embodiments of the invention may simplify the organization of cache memory from the perspective of a thread of software executing on core of a processor within a computer system. For example, in FIG. 2 each thread can be conceptualized as a single thread core 201-20 n having an associated cache memory 205-20 m composed of cache lines that are designated to be controlled only by the particular corresponding thread running on the conceptual single-threaded core. For example, in one embodiment, the conceptual cache memories 205-20 m may only have their MESI states modified by threads represented by single thread cores 201-20 n. Although in reality each of the cache memories 205-20 m may be composed of cache lines distributed throughout a cache memory or cache memories, conceptualizing the arrangement in the manner illustrated in FIG. 2 may be useful for understanding certain embodiments of the invention.

In one embodiment of the invention, attributes associated with a block of memory may be accessed, modified, and otherwise controlled by specific operations, such as an instruction or micro-operation decoded from an instruction. For example, in one embodiment an instruction that both loads information from a cache line and sets the corresponding attribute bits (e.g., “load_set” instruction) may be used. In other embodiments, an instruction that loads information from a cache line and checks the corresponding attribute bits (e.g., “load_check” instruction) may be used in addition to or a load_set instruction.

In still other embodiments, other instructions may be used to both control the attribute bits and access the corresponding cache data. For example, in one embodiment an instruction may be used that stores information to a cache line while either checking or setting (or both) the corresponding attribute bits (e.g., a “store_set” and/or “store_check” instruction). In some embodiments, instructions may be used to control or access the attribute bits that do not have an associated cache memory operation, such as load or store.

In the case of an instruction that checks the attributes associated with a cache line, one or more architectural scenarios within one or more processing cores may be defined to perform certain events based on the attributes that are checked. There may be other types of events that can be performed in response to the attribute check. For example, in one embodiment, an architectural scenario may be defined to compare the attribute bits to a particular set of data and invoke a light-weight yield event based on the outcome of the compare. The light-weight yield may, among other things, call a service routine which performs various operations in response to the scenario outcome before returning control to a thread or other process running in the system. In another embodiment, a flag or register may be set to indicate the result. In still another embodiment, a register may be written with a particular value. Other events may be included as appropriate responses.

For example, one scenario that may be defined is one that invokes a light-weight yield and corresponding handler upon detecting an unexpected memory state. This may be useful if a thread or other process attempts to access a line of cache expecting it to have a certain MESI state and instead the cache line is in another memory state, indicating that the cache line may not be associated with that particular thread or process. In this manner, only those cache lines for which a particular thread has control may be successfully accessed, modified, or checked. In other embodiments, other scenarios may be defined based on a check of cache line memory attributes. In other embodiments memory attributes of locations of finer granularity than the cache line may also be checked.

FIG. 3 is a flow diagram illustrating the operation of at least one embodiment of the invention in which a load_set and a load_check instruction is used to set or check attribute bits associated with a particular cache line or range of addresses within a cache line. In other embodiments, other instructions or uops may be used to perform the operations illustrated in FIG. 3. At operation 301, it is determined whether a load_set or load_check instruction is performed. If a load_set instruction is performed, the attribute bits associated with the cache line addressed by the load portion of the instruction are modified at operation 305. In one embodiment, the load_set instruction may include a load uop and a set uop, which are decoded from the load_set instruction. Other operations may be included with the load and set operations in other embodiments.

If the instruction being performed is a load_check instruction, then the attribute bits associated with the address specified by the load portion of the load_check instruction are read at operation 310. In one embodiment, the load_check instruction may include a load uop and a check uop, which are decoded from the load_check instruction. Other operations may be included with the load and check operations in other embodiments. At operation 315 a scenario is performed based on the state of the attribute bits. In one embodiment, the scenario checks to see whether the attribute bits read at operation 310 indicate an unknown state of the cache line. If so, then, at operation 320, an appropriate event occurs. In one embodiment, a light-weight yield occurs and an event handler routine is performed to perform operations in response thereto. After the event handler completes (or before the event handler completes in some embodiments) control returns to the instruction in program order following the instructions from where the light-weight yield occurred.

An alternative embodiment is that instead of checking the attribute bits, one simply reads the attribute bits into a register. This value can then be used by the program. One example would be that the program could compare this value and conditionally branch to different code paths depending on the value.

FIG. 4 illustrates a front-side-bus (FSB) computer system in which one embodiment of the invention may be used. A processor 405 accesses data from a level one (L1) cache memory 410 and main memory 415. In other embodiments of the invention, the cache memory may be a level two (L2) cache or other memory within a computer system memory hierarchy. Furthermore, in some embodiments, the computer system of FIG. 4 may contain both a L1 cache and an L2 cache.

Illustrated within the processor of FIG. 4 is a storage area 406 for machine state. In one embodiment storage area may be a set of registers, whereas in other embodiments the storage area may be other memory structures. Also illustrated in FIG. 4 is a storage area 407 for save area segments, according to one embodiment. In other embodiments, the save area segments may be in other devices or memory structures. The processor may have any number of processing cores. Other embodiments of the invention, however, may be implemented within other devices within the system, such as a separate bus agent, or distributed throughout the system in hardware, software, or some combination thereof.

The main memory may be implemented in various memory sources, such as dynamic random-access memory (DRAM), a hard disk drive (HDD) 420, or a memory source located remotely from the computer system via network interface 430 containing various storage devices and technologies. The cache memory may be located either within the processor or in close proximity to the processor, such as on the processor's local bus 407.

Furthermore, the cache memory may contain relatively fast memory cells, such as a six-transistor (6T) cell, or other memory cell of approximately equal or faster access speed. The computer system of FIG. 4 may be a point-to-point (PtP) network of bus agents, such as microprocessors, that communicate via bus signals dedicated to each agent on the PtP network. FIG. 5 illustrates a computer system that is arranged in a point-to-point (PtP) configuration. In particular, FIG. 5 shows a system where processors, memory, and input/output devices are interconnected by a number of point-to-point interfaces.

The system of FIG. 5 may also include several processors, of which only two, processors 570, 580 are shown for clarity. Processors 570, 580 may each include a local memory controller hub (MCH) 572, 582 to connect with memory 22, 24. Processors 570, 580 may exchange data via a point-to-point (PtP) interface 550 using PtP interface circuits 578, 588. Processors 570, 580 may each exchange data with a chipset 590 via individual PtP interfaces 552, 554 using point to point interface circuits 576, 594, 586, 598. Chipset 590 may also exchange data with a high-performance graphics circuit 538 via a high-performance graphics interface 539. Embodiments of the invention may be located within any processor having any number of processing cores, or within each of the PtP bus agents of FIG. 5.

Other embodiments of the invention, however, may exist in other circuits, logic units, or devices within the system of FIG. 5. Furthermore, in other embodiments of the invention may be distributed throughout several circuits, logic units, or devices illustrated in FIG. 5.

Embodiments of the invention described herein may be implemented with circuits using complementary metal-oxide-semiconductor devices, or “hardware”, or using a set of instructions stored in a medium that when executed by a machine, such as a processor, perform operations associated with embodiments of the invention, or “software”. Alternatively, embodiments of the invention may be implemented using a combination of hardware and software.

While the invention has been described with reference to illustrative embodiments, this description is not intended to be construed in a limiting sense. Various modifications of the illustrative embodiments, as well as other embodiments, which are apparent to persons skilled in the art to which the invention pertains are deemed to lie within the spirit and scope of the invention. 

What is claimed is:
 1. An multi-threaded processor comprising: a decoder to decode instructions of a first thread of execution; and a memory block, the memory block associated with a set of user-configurable attributes; an execution unit in response to one or more instructions of the first thread of execution, to load a portion of the user-configurable attributes associated with the memory block from a cache memory, and store the portion of the user-configurable attributes in one or more registers, wherein a first attribute of the portion of the user-configurable attributes indicates a state of the block of memory.
 2. The processor of claim 1 wherein the memory block is associated with a cache line within the cache memory.
 3. The processor of claim 2 wherein the first attribute indicates to which of a plurality of threads of a multi-threaded program the cache line corresponds.
 4. The processor of claim 2 wherein the cache memory comprises a storage area of attribute bit storage areas to store the set of attributes.
 5. The processor of claim 4 wherein the bit storage areas have at least one bit storage sub-area associated with only one cache line.
 6. The processor of claim 5 wherein each cache line of the cache memory has associated therewith a set of user-configurable attribute bits.
 7. The processor of claim 6 wherein the cache memory is a data cache.
 8. The processor of claim 1 wherein a second attribute of the portion of the user-configurable attributes indicates if the first thread can modify the user-configurable attributes.
 9. A non-transitory machine-readable medium having stored thereon a set of instructions, which if executed by a machine cause the machine to perform a method comprising: loading a portion of user-configurable attributes associated with a memory block from a cache memory, and storing the portion of the user-configurable attributes in one or more registers, wherein a first attribute of the portion of the user-configurable attributes indicates a state of the block of memory.
 10. The non-transitory machine-readable medium of claim 9 wherein a second attribute of the portion of the user-configurable attributes indicates a size of the first block of memory.
 11. The non-transitory machine-readable medium of claim 10 wherein a third attribute of the portion of the user-configurable attributes indicates if the first thread can modify the user-configurable attributes. 